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Infrared and visible image fusion based on NSCT and stacked sparse autoencoders

机译:基于NSCT和堆叠式稀疏自动编码器的红外与可见光图像融合

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摘要

To integrate the infrared object into the fused image effectively, a novel infrared (IR) and visible (VI) image fusion method by using nonsubsampled contourlet transform (NSCT) and stacked sparse autoencoders (SSAE) is proposed. Firstly, the IR and VI images are decomposed into low-frequency subbands and high-frequency subbands by using NSCT. Secondly, SSAE is performed on the low frequency subband of IR image to calculate the object reliabilities (OR) of the low frequency subband coefficients. Subsequently, an adaptive multi-strategy fusion rule based on OR is designed for the fusion of low frequency subbands and a choose-max fusion rule with the absolute values of high frequency subband coefficients are employed for the fusion of high frequency subbands. Experimental results show the proposed method is superior to the conventional methods in highlighting the infrared objects as well as keeping the background information in VI image.
机译:为了将红外物体有效地融合到融合图像中,提出了一种利用非下采样轮廓波变换(NSCT)和堆叠稀疏自动编码器(SSAE)的红外(IR)和可见(VI)图像融合方法。首先,利用NSCT将IR和VI图像分解为低频子带和高频子带。其次,对红外图像的低频子带进行SSAE计算,以计算低频子带系数的对象可靠性(OR)。随后,针对低频子带的融合设计了一种基于OR的自适应多策略融合规则,并且将具有高频子带系数绝对值的choice-max融合规则用于高频子带的融合。实验结果表明,该方法在突出红外物体以及将背景信息保留在VI图像方面优于传统方法。

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